DEVICE FOR ANALYSING THE SENSITIVITY TO THE FORMATION OF DEPOSIT IN A FUEL, IN PARTICULAR A FUEL USED IN AIRCRAFT
20190049424 ยท 2019-02-14
Inventors
- Arij Ben Amara (Le Pecq, FR)
- Maira Alves Fortunato (Carrieres sur Seine, FR)
- Laurie Starck (Rueil Malmaison, FR)
Cpc classification
International classification
Abstract
The present invention is a device for analyzing sensitivity to deposit formation in a fuel notably used in aircraft, comprising a tank (10) for the fuel to be analysed, at least one test section (18) with a heated tube (46) along which the fuel flows and a filter (66) associated with a deposit measurement system (68). According to the invention, the device comprises at least two identical test sections (18.sub.1 to 18.sub.6) arranged in parallel and a control unit (72) independently controlling at least one of the operating conditions of at least one of the two test sections.
Claims
1.-11. (canceled)
12. A device for analyzing sensitivity to deposit formation in a fuel, comprising a tank for containing the fuel to be analyzed, a heated tube along which the fuel flows from the tank, a filter associated with a deposit measurement system through which the fuel flows, at least two identical fuel test sections arranged in parallel through which the fuel flows and a control unit which independently controls at least one operating condition of at least one of the at least two identical fuel test sections.
13. An analysis device as claimed in claim 12, wherein the at least one operating condition is variation of temperature of the heated tube.
14. A device as claimed in claim 12, wherein one of the at least one operating condition is variation of flow rate of the flowing in the heated tube.
15. A device as claimed in claim 13, wherein one of the at least one operating condition is variation of flow rate of the flowing in the heated tube.
16. A device as claimed in claim 12, wherein at least one of the at least one operating condition is variation of duration of the test section analysis.
17. A device as claimed in claim 13, wherein at least one of the at least one operating condition is variation of duration of the test section analysis.
18. A device as claimed in claim 14, wherein at least one of the at least one operating condition is variation of duration of the test section analysis.
19. A device as claimed in claim 15, wherein at least one of the at least one operating condition is variation of duration of the test section analysis.
20. A device as claimed in claim 12, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
21. A device as claimed in claim 13, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
22. A device as claimed in claim 14, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
23. A device as claimed in claim 15, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
24. A device as claimed in claim 16, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
25. A device as claimed in claim 17, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
26. A device as claimed in claim 18, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
27. A device as claimed in claim 19, wherein one of the at least one operating condition is variation of at least one characteristic of the heated tube.
28. A device as claimed in claim 20, wherein a characteristic of the heated tube comprises material of the tube or a surface condition of the tube.
29. A device as claimed in claim 12, wherein the fuel is a jet fuel.
30. A device as claimed in claim 12, wherein the fuel is a diesel fuel.
31. A device as claimed in claim 12, wherein the fuel is gasoline.
32. A device as claimed in claim 12, wherein the deposit measurement system comprises a differential pressure sensor.
33. A method for analyzing sensitivity to deposit formation in a fuel, comprising circulating fuel to be analyzed from a tank to a device for analyzing sensitivity to deposit formation in the fuel including a heated tube and a filter associated with a deposit measurement system; circulating the fuel to be analyzed in at least two identical test sections arranged in parallel; and controlling at least one operating condition of at least one of the two identical test sections.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Other features and advantages of the invention will be clear from reading the description hereafter, given by way of non-limitative example, with reference to the accompanying figures wherein, in addition to
DETAILED DESCRIPTION OF THE INVENTION
[0027] In
[0028] This device comprises a supply tank 10 containing the jet fuel, a filter 12 for the jet fuel leaving the tank and a circulation pump 14 for this jet fuel. This circuit also comprises a distribution rail 16 supplying pumped jet fuel to at least two test sections, here six sections 18.sub.1 to 18.sub.6 arranged in parallel, and a discharge rail 20 for the jet fuel which has flowed through the test sections.
[0029] Advantageously, this discharge rail is connected to a heat exchanger 22 arranged downstream from a used jet fuel recovery tank 24.
[0030] This circuit further comprises various jet fuel circulation pipes for connecting the elements of this circuit.
[0031] Thus, a pipe 26 connects tank 10 to filter 12, another pipe 28 connects the filter to pump 14, yet another pipe 30 connects the pump to distribution rail 16, and finally a return pipe 32 connects the distribution rail to the supply tank, this pipe comprising a flow regulator 34.
[0032] All these elements thus make up a supply circuit 36 for the test sections.
[0033] As is best seen in
[0034] Each test section comprises a vertical rigid duct 44 housing a metal tube 46 of smaller diameter, a heater 48, here in form of electric resistors 50 arranged at each end of the tube, for heating this tube to the same temperature, a power supply 52 for these resistors through conductors 54, a jet fuel delivery manifold 56 between distribution rail 16 and upper end 58 of duct 44, a flow rate control system 60 provided on the manifold, a jet fuel discharge manifold 62 connecting lower end 64 of duct 44 to discharge rail 20 and carrying a jet fuel filter 66, and a measurement system 68 for measuring the deposit from the jet fuel deposited on the filter.
[0035] Preferably, this measurement system comprises a differential pressure sensor 70 for measuring the pressure differential between upstream and downstream of this filter.
[0036] This device also comprises a control unit 72 which controls independently at least one of the operating conditions of at least one of the two test sections, notably the temperature of the tubes, as well as automatic implementation of the analysis, which data is recorded in real time.
[0037] More particularly, this unit is connected by a control line 74 to differential sensor 70 to know the filter clogging state, by a control line 76 to circulation pump 14, by another control line 78 to flow rate control system 60 and by yet another control line 80 to resistor power supply 52.
[0038] In operation, control unit 72 controls independently at least one and preferably each heater 48 of tubes 46. The heating temperature of each tube can be separately regulated between 100 C. and 400 C. for each test section. Pump 14 extracts the jet fuel from tank 10 and passes it through filter 12. At the pump outlet, the jet fuel is sent to distribution rail 16 to feed all the delivery manifolds 56 of test sections 18.sub.1 to 18.sub.6. The flow rate of the jet fuel circulating in each manifold 56 is controlled independently by flow rate control system 60 managed by control unit 72.
[0039] From the manifold, the jet fuel passes into rigid duct 44 and circulates all along the outer wall of tube 46. Under the effect of the heat of this tube, deposits form from this jet fuel, part of which settles on this outer wall and another part mixes with the jet fuel.
[0040] The jet fuel and the dissolved deposits it contains are discharged through discharge manifold 62 towards recovery tank 24.
[0041] During this discharge, the jet fuel flows through filter 66 which retains the deposits contained in this jet fuel, then the jet fuel is cooled to around 20 C. by exchanger 22 prior to entering the recovery tank.
[0042] The excess jet fuel at distribution rail 16 is sent back to supply tank 10 through pipe 32.
[0043] The analysis is stopped after a given time period that can be defined separately for each test section.
[0044] It should be noted that the pressure differential through each filter 66 is monitored in real time by the associated differential pressure sensor 70, which indicates the formation of degradation products in the liquid fuel.
[0045] Furthermore, the solid deposits formed on the tubes can be characterized in terms of thickness and volume, either ex situ, with a quantification method, for example interferometry or ellipsometry as described in the ASTM D 3241 standard, or in situ, using transparent rigid ducts allowing light beam passage, coupled with an optical method, for example interferometry or ellipsometry as described in the ASTM D 3241 standard.
[0046] As illustrated by the example below, the device described above allows automatic control of the test. It reproduces under dynamic conditions deposits on several sections arranged in parallel which are subjected to different operating conditions.
[0047] Characterization of the fuel involves all or part of the following variations:
[0048] 1) Temperature variation: The test is carried out at several temperatures on each test section. The recommended temperature Ti ranges between 160 C. and 360 C. The variation is preferably performed on at least five different test sections, all other things being equal: Duration Di (recommended duration 2.5 h), surface condition Wi (recommended Wi compatible with ASTM D 3241), fuel flow rate i (recommended i 3 mL/min).
[0049] 2) Fuel flow rate variation: the recommended flow rate ranges between 0 and 30 mL/min. The variation is preferably performed on at least two different test sections, all other things being equal: Temperature Ti (recommended Ti 260 C.), duration Di (recommended duration 2.5 h), surface condition Wi (recommended Wi compatible with ASTM D 3241).
[0050] 3) Test duration variation: The recommended duration Di ranges between 0 and 30 hours. The variation is preferably performed on at least two different test sections, all other things being equal: Temperature Ti (recommended Ti 260 C.), fuel flow rate i (recommended (i 3 mL/min) and surface condition Wi (recommended Wi compatible with ASTM D 3241).
[0051] 4) Tube characteristics variation: Non-standard tubes can be evaluated. These tubes can have different types of materials, coatings or surface conditions. For example, through the use of material having a catalytic function, such as copper, zinc and iron. The variation is preferably performed on at least two different test sections, all other things being equal: Temperature Ti (recommended Ti 260 C.), fuel flow rate i (recommended (i 3 mL/min) and duration Di (recommended Di 2.5 h).
[0052] At the end of each analysis, the deposit formed on tubes 46 is characterized by a quantification method (the ASTM D 3241 methods for example).
[0053] Advantageously, an analysis module allows grouping the results of all the sections. The module then constructs the deposit amount variation curves as a function of the evaluated parameters, which are temperature, analysis duration, velocity of flow and surface characteristics. These various curves allow full mapping of the thermal stability of the jet fuel.
[0054] Thus, this mapping provides: [0055] An analysis of the effect of key parameters on deposit formation [0056] a predictive tool allowing: [0057] Estimation of the stability of a jet fuel at all the untested intermediate temperatures, and [0058] Estimation of the breakpoint temperature [0059] a preventive tool for alerting the user of any default risk by associating the mapped data with the dimensions and the user's operating conditions.
[0060] The present invention is not limited to the example described above and it can apply to any type of fuel other than jet fuels.
[0061] In particular, the analysed fuel can be diesel fuel, biodiesel, gasoline, etc.